The Industrial Internet of Things: A Primer

IIoT is an acronym for the “Industrial Internet of Things,” referring to connected devices and advanced analytics in manufacturing, transportation, energy, and other industries.

General Electric coined the term “Industrial Internet” in 2012 to describe a third wave of innovation (the first being the Industrial Revolution of the 19th century and the second being the introduction of mainframe computers in the 1950s through the 1990s.) Today, industrial internet represents the fourth industrial revolution, or Industry 4.0, which brings together smart devices, advanced data systems, and physical and human networks to allow businesses to increase operational efficiencies and improve business decisions and outcomes.

IIoT is part of a larger system of interconnected devices called IoT, or the “Internet of Things.” In IoT, a “thing” could be any physical object from a coffee pot to a car, as long as it can connect to the internet and communicate with a network of other devices without human intervention.

The benefits of IIoT are numerous, and it has multiple applications across a wide range of industries. Connected companies see a reduction in downtime and maintenance costs, an increase in production, stronger workplace safety, and generally get a better idea of what’s going on in their operations. We’ll explore all of these ideas, including how IIoT is being used in digital transformation, in the pages that follow.

IIoT Overview

IIoT technology is used to bring automated instrumentation, data collection and analysis, reporting and decision making to industrial operations. It enables this through an interconnected system of smart sensors, gateways, software platforms, and cloud servers. Sensors are deployed on machines where they capture data and send it to the gateway, which functions as a hub between the connected devices and applications and services running in the datacenter or the cloud.. This data can then be accessed by workers via a computer or mobile device.

How IIoT is used in practice varies widely, with new industrial applications being introduced as more industries adopt it. Several applications have proven particularly popular, including:

IIoT has spurred innovations in manufacturing, farming, transportation, and energy management and further developments are expected in other industries over the next several years.

How is IIoT used?

IIoT vs IoT: What's The Difference?

In the broadest terms, the difference between IIoT and IoT is their respective purpose. IIoT’s focus is to improve an array of industrial processes, while IoT is mainly concerned with increasing consumer convenience. By looking closely at how each achieves its goal, we can get a more detailed picture of how they differ.

IIoT is unique from other IoT technologies because it is tailored to industrial requirements. Among other things, IIoT devices have to be extremely reliable. A light-rail train, electrical grid, or even an airline baggage tracker that goes offline entails significant consequences. IIoT devices are engineered to maintain connectivity and have long lifespans, while also securing data in transit and at rest.

Additionally, a device deployed in an industrial setting needs the ability to integrate with various business systems, such as ERP, EAM, CMMS and others, while also interacting with hundreds of people in a single day. It also needs to take into account a variety of protocols and data formats, making data analysis challenging in light of traditional management technologies. That means that it must be able to communicate frequently, include different applications for each of its functional roles, and recall varying access privileges.

Finally, IIoT is an investment that can help facilitate stronger and more strategic business decisions. Organizations that implement IIoT systems require ROI in the form of reduced maintenance costs, increased efficiency, and improved productivity.

IIoT in Manufacturing

The manufacturing industry has been one of the most enthusiastic adopters of IIoT, largely because the technology enables a host of efficiencies for the industry. With IIoT, equipment can be managed remotely, monitored in real-time, and proactively maintained. The condition, location, and status of products are much easier to track. Product usage patterns are also more easily identified with IIoT, allowing manufacturers to increase production of items that are popular and discontinue those that aren’t before they negatively impacts the organization.

IIoT Manufacturing

Here are some of the most popular IIoT use cases in today's manufacturing industry:

How IIoT works with Manufacturing Execution Systems

The question of whether IIoT will replace or complement MES (Manufacturing Execution Systems) is still being debated. Some insiders argue that IIoT will eventually displace MES or force it to modernize, maintaining that most of these systems are outdated and aren’t equipped to collect data in real time from sensors deployed on the factory floor. Nor were they designed for long-term data storage, AI, and analytics. This results in data that’s siloed, if it’s collected at all, and hinders a factory’s ability to achieve a comprehensive view of its operations, predict mechanical failure and other disruptions, and optimize processes.

Others make the case that the two systems are complementary. One of the arguments is that MES can provide product and maintenance data that allows IIoT to predict failure. In this scenario, MES acts as a proxy for devices devoid of sensors, communicating with the IIoT system on behalf of those devices. MES can map and store information on operations that allows IIoT to operate a facility autonomously.

While the question is far from settled, manufacturers wanting to adopt IIoT solutions will have to rethink how they use their MES in the short term.

IIoT as a part of Industry 4.0

IIoT is one of the critical components of Industry 4.0.

Industry 4.0 is a term referring to the technological advancements and new approaches adopted in the industrial sector over the last decade. This period has been informally christened “the fourth revolution” in manufacturing. The first was the mechanization of manufacturing processes through water and steam power. The second was the introduction of assembly lines and the advent of electricity. The third revolution was the rise of computers and introduction of automation to industrial processes. And the fourth industrial revolution is defined by the integration of technologies and new processes — such as IIoT, Cyber-Physical Systems (CPS), Cognitive Computing (CC), and Machine-to-Machine communication (M2M) — into industrial infrastructures.

Defining the IIoT Platform

An IIoT platform is a set of hardware and software that work together to connect industrial processes with information systems. This middle layer can include a variety of components, but at a minimum, it includes the base software (often SaaS), IoT devices, and physical gateways that connect the two together.

Both the software and hardware components are made up of many individual elements. Hardware typically includes smart sensors, IoT devices, human-machine interfaces (HMIs), edge devices, and industrial machinery. Software encompasses an operating system, runtime system, cloud-based software, app development environment, data visualization and data storage tools. There are also industry-specific IIoT platforms and industrial applications that are designed for industries like rail or utility companies.

An IIoT platform’s main purpose is to give you centralized control of all your connected machines and processes while providing the means to view your entire operation and glean the insights to optimize as conditions and requirements change.

The Bottom Line

IIoT is the future of industrial business

IIoT is one of the most significant trends for business processes in industrial environments. And as market speed increases and technology disruptions become more frequent, IIoT is helping companies stay agile and competitive.

IIoT improves just about every aspect of industrial operations: cost savings through predictive maintenance, new operational efficiency through automation, sustainable energy consumption and increased productivity through safety improvements. Further, IIoT gives you previously unimaginable visibility into your enterprise with centralized control and aggregated data analysis. In short, IIoT can enable new levels of performance and profitability in any industrial setting.

FAQs about Industrial Internet of Things (IIoT)

What is the Industrial Internet of Things (IIoT)?
The Industrial Internet of Things (IIoT) refers to the use of connected devices, sensors, and software in industrial settings to collect, exchange, and analyze data for improved efficiency, productivity, and safety.
How does IIoT differ from IoT?
IIoT focuses specifically on industrial environments such as manufacturing, energy, and transportation, while IoT is a broader term that includes consumer devices and applications.
What are some benefits of IIoT?
Benefits of IIoT include increased operational efficiency, predictive maintenance, reduced downtime, improved safety, and better decision-making through data-driven insights.
What industries use IIoT?
Industries that use IIoT include manufacturing, energy, utilities, transportation, oil and gas, and logistics.
What are the challenges of implementing IIoT?
Challenges of implementing IIoT include data security, integration with legacy systems, scalability, and managing large volumes of data.

Related Articles

Advanced Encryption Standard & AES Rijndael Explained
Learn
3 Minute Read

Advanced Encryption Standard & AES Rijndael Explained

Learn all about AES Rijndael, today's go-to algorithm that won a NIST competition for ensuring data confidentiality — and it does much more than that!
Network Security Monitoring (NSM) Explained
Learn
4 Minute Read

Network Security Monitoring (NSM) Explained

Network security monitoring sounds like other security measures like intrusion detection. Find out why it's not — and what makes it so useful for IT today.
Cybercrime as a Service (CaaS) Explained
Learn
4 Minute Read

Cybercrime as a Service (CaaS) Explained

Perhaps unsurprisingly, cybercrime is now available for hire. Harnessing the ‘as a service’ model, find out how cybercrime can be enacted by practically anyone.
Cryptography 101: Key Principles, Major Types, Use Cases & Algorithms
Learn
6 Minute Read

Cryptography 101: Key Principles, Major Types, Use Cases & Algorithms

Cryptography underpins so many digital interactions — you might not even realize it. Get the full story on cryptography, use cases and emerging types.
Corporate Espionage: What You Need To Know
Learn
3 Minute Read

Corporate Espionage: What You Need To Know

Cyber threats are not only anonymous. Find out why people you know, and perhaps partner with, are spying on you — and whether it’s corporate espionage.
Cybersecurity Risk Management: 5 Steps for Assessing Risk
Learn
6 Minute Read

Cybersecurity Risk Management: 5 Steps for Assessing Risk

Don’t just guess your risk profile — assess it! Learn about cybersecurity risk management and apply these 5 steps to turn the process into an ongoing practice.
Denial-of-Service Attacks: History, Techniques & Prevention
Learn
4 Minute Read

Denial-of-Service Attacks: History, Techniques & Prevention

DoS attacks have a long history, but they’re also predicted to get worse in 2023. Find out the many ways they work and learn to prevent them in the first place.
Encryption Explained: At Rest, In Transit & End-To-End Encryption
Learn
4 Minute Read

Encryption Explained: At Rest, In Transit & End-To-End Encryption

Humans have encrypted messages for millennia. Today it’s essentially part of daily life. Understand how it works — and decide if you need end-to-end encryption.
What is DevOps Automation?
Learn
7 Minute Read

What is DevOps Automation?

Automation is essential to DevOps — but it’s not easy. This guide details how to automate DevOps and the best tools for the job so you can succeed in no time!